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Story Visualization by Online Text Augmentation with Context Memory (2308.07575v2)

Published 15 Aug 2023 in cs.CV, cs.AI, and cs.LG

Abstract: Story visualization (SV) is a challenging text-to-image generation task for the difficulty of not only rendering visual details from the text descriptions but also encoding a long-term context across multiple sentences. While prior efforts mostly focus on generating a semantically relevant image for each sentence, encoding a context spread across the given paragraph to generate contextually convincing images (e.g., with a correct character or with a proper background of the scene) remains a challenge. To this end, we propose a novel memory architecture for the Bi-directional Transformer framework with an online text augmentation that generates multiple pseudo-descriptions as supplementary supervision during training for better generalization to the language variation at inference. In extensive experiments on the two popular SV benchmarks, i.e., the Pororo-SV and Flintstones-SV, the proposed method significantly outperforms the state of the arts in various metrics including FID, character F1, frame accuracy, BLEU-2/3, and R-precision with similar or less computational complexity.

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Authors (7)
  1. Daechul Ahn (4 papers)
  2. Daneul Kim (4 papers)
  3. Gwangmo Song (3 papers)
  4. Seung Hwan Kim (15 papers)
  5. Honglak Lee (174 papers)
  6. Dongyeop Kang (72 papers)
  7. Jonghyun Choi (50 papers)
Citations (4)

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